Investigations of Co(ii) to Co(iii) oxidation mechanisms at Fe3−δO4 nanoparticle surfaces

Abstract

Understanding and predicting the interaction mechanisms between Co and spinel iron oxides (Fe3−δO4), including magnetite, maghemite and their solid solutions, is of major interest in both the environmental and industrial contexts. While the surface complexation of Co2+, its polymerization and the surface precipitation of Fe3−δO4@CoO have been well documented, the oxidation of Co2+ to Co3+ and interaction mechanisms between Co3+ and Fe3−δO4 nanoparticles in the presence of O2 have attracted less attention. In this study, experimental and modeling results, combined with XAS and XMCD analyses at the L2,3-edges, as well as TEM and XRD analysis, enabled the differentiation of several Co species according to the Co concentration, at pH 8 under atmospheric O2. At the lowest Co concentrations investigated, Co2+ prevailed as surface complexes, incorporated into Fe3−δO4 nanoparticles, or as Co(OH)2-like surface precipitates. Increasing the Co concentration led to the formation of an additional Co3O4-like phase on the surface of Fe3−δO4 nanoparticles. Quick-XAS measurements at the Co K-edge allowed the kinetics of Co sorption and oxidation on Fe3−δO4 nanoparticles to be followed, supporting the equilibrium observations. These results provide a more detailed understanding of mechanisms for Co sorption onto Fe3−δO4 nanoparticles under oxic conditions, which offers an alternative environmentally friendly route for the synthesis of Co-doped Fe3−δO4 nanoparticles. In addition, this enables understanding of the potential interactions between Co and Fe3−δO4 nanoparticles in environmental systems.

Graphical abstract: Investigations of Co(ii) to Co(iii) oxidation mechanisms at Fe3−δO4 nanoparticle surfaces

Supplementary files

Article information

Article type
Paper
Submitted
18 Dec 2025
Accepted
31 Jan 2026
First published
02 Feb 2026

Dalton Trans., 2026, Advance Article

Investigations of Co(II) to Co(III) oxidation mechanisms at Fe3−δO4 nanoparticle surfaces

L. Fablet, M. Pédrot, F. Choueikani, A. Beauvois, T. Stephant, V. Briois and R. Marsac, Dalton Trans., 2026, Advance Article , DOI: 10.1039/D5DT03034J

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